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通过单一输入调控双层交联和通透性来震荡聚合物囊泡内部的局部环境。

Oscillating the local milieu of polymersome interiors via single input-regulated bilayer crosslinking and permeability tuning.

机构信息

CAS Key Laboratory of Soft Matter Chemistry, Department of Polymer Science and Engineering, School of Chemistry and Materials Science, University of Science and Technology of China, 230026, Hefei, Anhui, China.

出版信息

Nat Commun. 2022 Jan 31;13(1):585. doi: 10.1038/s41467-022-28227-6.

Abstract

The unique permselectivity of cellular membranes is of crucial importance to maintain intracellular homeostasis while adapting to microenvironmental changes. Although liposomes and polymersomes have been widely engineered to mimic microstructures and functions of cells, it still remains a considerable challenge to synergize the stability and permeability of artificial cells and to imitate local milieu fluctuations. Herein, we report concurrent crosslinking and permeabilizing of pH-responsive polymersomes containing Schiff base moieties within bilayer membranes via enzyme-catalyzed acid production. Notably, this synergistic crosslinking and permeabilizing strategy allows tuning of the mesh sizes of the crosslinked bilayers with subnanometer precision, showing discriminative permeability toward maltooligosaccharides with molecular sizes of ~1.4-2.6 nm. The permselectivity of bilayer membranes enables intravesicular pH oscillation, fueled by a single input of glucose. This intravesicular pH oscillation can further drive the dissipative self-assembly of pH-sensitive dipeptides. Moreover, the permeabilization of polymersomes can be regulated by intracellular pH gradient as well, enabling the controlled release of encapsulated payloads.

摘要

细胞膜的独特选择透过性对于维持细胞内的动态平衡以及适应微环境的变化至关重要。尽管脂质体和聚合物囊泡已被广泛设计用来模拟细胞的微观结构和功能,但在稳定和通透性之间取得协同作用,以及模拟局部环境波动仍然是一个巨大的挑战。在此,我们报道了在含有席夫碱基团的 pH 响应聚合物囊泡的双层膜内通过酶催化产酸进行协同交联和通透化。值得注意的是,这种协同交联和通透化策略可以实现交联双层的纳米级精确网格尺寸调节,并对分子量约为 1.4-2.6nm 的麦芽寡糖表现出具有区分性的通透性。双层膜的选择透过性使得可以通过单个葡萄糖输入来驱动囊泡内 pH 振荡。这种囊泡内 pH 振荡可以进一步驱动 pH 敏感二肽的耗散自组装。此外,聚合物囊泡的通透化也可以通过细胞内 pH 梯度来调节,从而实现包封的有效物质的可控释放。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f016/8803951/35bc7e21e724/41467_2022_28227_Fig1_HTML.jpg

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